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Host Protein Modulation of Type III Secretion

Host Protein Modulation of Type III Secretion
III 型分泌的宿主蛋白调节
批准号:
7774048
负责人:
Ralph R. Isberg
金额:
$24.75万
依托单位:
依托单位国家:
美国
项目类别:
财政年份:
2010
资助国家:
美国
项目状态:
已结题
起止时间:
2010-02-01 至 2012-01-31

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中文摘要
翻译
描述(申请人提供):大量细菌病原体通过错位调节正常宿主细胞功能的蛋白质移位而致病。许多革兰氏阴性细菌使用专门的蛋白质转运系统来实现这一目标。其中最主要的是III型分泌系统,它对引起像肠源性腹泻这样的常见疾病和像腺鼠疫这样的致命疾病至关重要。这些蛋白质转位系统在广泛的病原体中发现了许多保守的成分,因此它们是治疗干预的潜在部位。不幸的是,我们对专门的蛋白质转位系统的功能细节的了解极其有限,对细菌附着到宿主细胞之后以及转位的蛋白质与其靶标相遇之前发生的事件知之甚少。这项建议旨在解决这一差距,并为一项长期研究奠定基础,该研究确定宿主细胞如何促进蛋白质底物的沉积和功能,这些蛋白质底物通过专门的分泌系统从细菌进入宿主细胞。 由于关于如何实现这一长期目标的线索很少,该应用程序提出了一种策略,该策略有可能识别调节转位底物功能的每一种宿主细胞蛋白。为此,将详细分析单一细菌蛋白底物的易位,最终目标是确定与多种病原体沉积的大量蛋白相互作用的宿主蛋白。提出了两种检测策略,可以高通量鉴定支持假结核耶尔森菌YopE蛋白活性的宿主蛋白,YopE蛋白是肠源性耶尔森氏菌编码的所有III型分泌系统的易位底物,也是腺鼠疫的病原体。每一种都利用识别不能支持YopE功能的宿主细胞的能力,这可以通过增加荧光共振能量转移读数来检测。在每种情况下,接受降低YopE活性的特定干扰RNA(RNAi)处理的宿主细胞将基于该读数进行鉴定,并将在二次检测中进一步分析鉴定出的RNAi分子。这些二次检测将确定YopE是否需要宿主蛋白从细菌移动到宿主细胞,YopE移动以找到其宿主细胞靶标,或识别靶标。最重要的是,这项拟议的工作有可能确定一种宿主细胞系统,该系统将III型分泌系统底物护送到他们的目标。这种关系的中断可能是未来针对细菌病原体的治疗的重要场所。 公共卫生相关性:由病原菌编码的专门的蛋白质转运系统对于在人类宿主内建立定居和引起疾病至关重要,因为它促进了对宿主细胞有毒的细菌蛋白质的移动。有证据表明,宿主细胞以某种方式与病原体合作,允许自己中毒,但不幸的是,关于宿主如何成为这一过程中的无意参与者,人们知之甚少。通过利用最近开发的用于识别被细菌蛋白质错误调控的细胞的分析方法,提出了发现与病原体合作的蛋白质的方案。所获得的数据旨在朝着寻找宿主蛋白的长期目标努力,该宿主蛋白护送广泛的病原体蛋白,为化疗干预提供潜在的部位。
英文摘要
DESCRIPTION (provided by applicant): A large number bacterial pathogens cause disease via the translocation of proteins that misregulate normal host cell function. Many Gram-negative bacteria use specialized protein translocation systems to accomplish this goal. Chief among these are the Type III Secretion Systems, which are critical for causing diseases as common as enteropathogenic diarrhea and as virulent as bubonic plague. These protein translocation systems have a number of conserved components found in a broad swath of pathogens, so they are potential sites for therapeutic intervention. Unfortunately, our understanding of the functional details of specialized protein translocation systems is extremely limited, and very little is known about the events that occur after attachment of the bacterium to the host cell and prior to the encounter of the translocated protein with its target. This proposal is intended to address this gap, and set the stage for a long-term study that determines how the host cell facilitates the deposition and function of protein substrates that move from the bacterium, via the specialized secretion system, into the host cell. As there are very few leads regarding how to approach this long-term goal, this application proposes to develop a strategy that has the potential to identify every host cell protein that modulates the function of a translocated substrate. For this purpose, the translocation of a single bacterial protein substrate will be analyzed in detail, with the eventual goal of identifying host proteins that interface with a large number of proteins deposited by a broad range of pathogens. Two assay strategies are proposed that should allow high throughput identification of host proteins that support the activity of the Yersinia pseudotuberculosis YopE protein, a translocated substrate of all Type III Secretion Systems encoded by enteropathogenic Yersinia and the causative agent of bubonic plague. Each takes advantage of the ability to identify host cells that are unable to support YopE function, which can be detected by an increase in fluorescence resonance energy transfer readout. In each case, host cells subjected to a specific interfering RNA (RNAi) treatment that reduces YopE activity will be identified based on this readout, and identified RNAi molecules will be analyzed further in secondary assays. These secondary assays will determine whether the host protein is required for movement of YopE out of the bacterium into the host cell, movement of YopE to find its host cell target, or recognition of target. Most importantly, the proposed work has the potential to identify a host cell system that escorts Type III Secretion System substrates to their target. Disruption of such a relationship is potentially an important site for future therapeutics directed against bacterial pathogens. PUBLIC HEALTH RELEVANCE: Specialized protein translocation systems encoded by pathogenic bacteria are critical for establishing colonization and causing disease within human hosts by facilitating the movement of bacterial proteins that are toxic for host cells. Evidence exists that the host cell is somehow collaborating with the pathogen to allow itself to be intoxicated, but unfortunately very little is known regarding how the host becomes an unwitting participant in the process. By taking advantage of assays recently developed for identifying cells misregulated by the bacterial protein, schemes are proposed to uncover proteins that collaborate with the pathogen. The data obtained are intended to work toward the long-term goal of finding host proteins that escort a broad swath of pathogen proteins, providing potential sites for chemotherapeutic intervention.
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The interface between L. pneumophila manipulation of host endoplasmic reticulum and innate immune subterfuge
  • 批准号:
    10331320
  • 项目类别:
  • 资助金额:
    $66.14万
  • 财政年份:
    2020
  • 负责人:
    Ralph R. Isberg
  • 依托单位:
Molecular basis of metal acquisition by an intravacuolar pathogen
  • 批准号:
    10259847
  • 项目类别:
  • 资助金额:
    $69.48万
  • 财政年份:
    2020
  • 负责人:
    Ralph R. Isberg
  • 依托单位:
Molecular basis of metal acquisition by an intravacuolar pathogen
  • 批准号:
    10033724
  • 项目类别:
  • 资助金额:
    $64.6万
  • 财政年份:
    2020
  • 负责人:
    Ralph R. Isberg
  • 依托单位:
Molecular basis of metal acquisition by an intravacuolar pathogen
  • 批准号:
    10444928
  • 项目类别:
  • 资助金额:
    $68.98万
  • 财政年份:
    2020
  • 负责人:
    Ralph R. Isberg
  • 依托单位:
海外基金